DocumentCode
12347
Title
Motion Planning for Piezo-Actuated Flexible Structures: Modeling, Design, and Experiment
Author
Schrock, James ; Meurer, Tim ; Kugi, A.
Author_Institution
Autom. & Control Inst., Vienna Univ. of Technol., Vienna, Austria
Volume
21
Issue
3
fYear
2013
fDate
May-13
Firstpage
807
Lastpage
819
Abstract
We consider motion planning and feedforward control for a cantilevered flexible plate-like structure actuated by a finite number of surface-mounted piezoelectric patches to realize prescribed highly dynamic trajectories for the deflection profile in open loop. For this, a distributed-parameter mathematical model including damping and localized effects originating from the spatially distributed patch actuators is derived by means of the extended Hamilton´s principle. With this, a flatness-based design methodology is proposed for motion planning and feedforward control, which directly exploits the distributed-parameter system description. In particular, differential state, input, and output parameterizations are systematically constructed in terms of a basic output to achieve a one-to-one correspondence between system trajectories. Finite element methods are incorporated into the design to account for structures with nontrivial domain and nonisotropic material behavior. In addition, the convergence of the system parameterization is analyzed analytically and by means of numerical results. Finally, measurement results demonstrate the applicability of this approach for the realization of highly dynamic rest-to-rest transitions of the deflection profile of an orthotropic plate structure with macro-fiber composite patch actuators.
Keywords
actuators; cantilevers; damping; feedforward; finite element analysis; path planning; plates (structures); cantilevered flexible plate-like structure; damping; deflection profile; distributed patch actuator; distributed-parameter mathematical model; distributed-parameter system description; extended Hamilton principle; feedforward control; finite element method; flatness-based design methodology; macrofiber composite patch actuator; motion planning; nonisotropic material behavior; nontrivial domain; orthotropic plate structure; piezo-actuated flexible structure; surface-mounted piezoelectric patch; Actuators; Damping; Equations; Feedforward neural networks; Materials; Mathematical model; Planning; Experimental validation; Kirchhoff plate; feedforward control; flatness; flexible structure; in-domain control; motion planning; piezoelectric actuation; smart structure;
fLanguage
English
Journal_Title
Control Systems Technology, IEEE Transactions on
Publisher
ieee
ISSN
1063-6536
Type
jour
DOI
10.1109/TCST.2012.2196043
Filename
6198878
Link To Document